J. Mater. Sci. Technol. ›› 2026, Vol. 266: 38-47.DOI: 10.1016/j.jmst.2025.11.025

• Research article • Previous Articles     Next Articles

Dual-state conversion for high-entropy and reconfigurable resistive memory-based physically unclonable functions

Park Seoyounga,1, Na Hyesunga,1, Choi Jaewooa,1, Ismail Muhammada, Mahata Chandreswara, Ryu Donghyunb, Kim Sungjoonc, Lee Jung-Kyud, Yu Junsub,*, Kim Sungjuna,*   

  1. aDivision of Electronics and Electrical Engineering, Dongguk University, Seoul 04620, South Korea;
    bDepartment of Electrical and Computer Engineering and Inter-University Semiconductor Research Center (ISRC), Seoul National University, Seoul 08826, South Korea;
    cDepartment of AI Semiconductor Engineering, Korea University, Sejong 30019, South Korea;
    dDepartment of Semiconductor Engineering, Gyeongsang National University, Jinju, Gyeongnam 52828, South Korea
  • Received:2025-08-23 Revised:2025-11-08 Accepted:2025-11-17 Published:2026-09-20 Online:2025-11-27
  • Contact: *E-mail addresses: ir0509@snu.ac.kr (J. Yu), sungjun@dongguk.edu (S. Kim).
  • About author:1 These authors contributed equally to this work.

Abstract: As embedded and connected devices proliferate across smart electronics and Internet-of-Things platforms, hardware-level security has become increasingly important. Physically unclonable functions (PUFs), which leverage intrinsic process variations to generate device-specific fingerprints, offer a promising solution. Here, we propose a PUF architecture based on resistive random-access memory (RRAM) devices integrated with ultrathin silicon nitride (SiN) interfacial trapping layers. Systematic variation of the SiN thickness from 0 to 1.5 nm identifies the 0.5 nm configuration as optimal for enhancing stochastic filament formation, resulting in increased switching variability and entropy. Broad current-state distributions in both resistance states were converted into binary maps exhibiting ideal randomness metrics, including uniformity and diffusiveness near 50 % and entropy exceeding 0.94. These characteristics were maintained across multiple bit-map sizes. Furthermore, repeated SET/RESET cycling of a single memory cell enabled the generation of multiple distinct PUF responses with consistent entropy and uniqueness. These results establish interface-engineered RRAM as a high-entropy, reconfigurable, and fabrication-compatible platform for secure key generation in edge and embedded systems.

Key words: Physically unclonable function, Resistive random-access memory (RRAM), Silicon nitride interlayer, Secure key generation, Stochastic switching